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Polarization-independent and angle-insensitive electromagnetically induced transparent (EIT) metamaterial based on bi-air-hole dielectric resonators

机译:基于双气孔介电共振器的偏振无关和角度不敏感的电磁感应透明(EIT)超材料

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We numerically demonstrate that an electromagnetically induced transparent (EIT) all-dielectric metamaterial with properties of polarization-independence and incident angle insensitivity can be achieved in terahertz regimes. The metamaterial cell is composed of two bi-air-hole cubes (BCs) with different sizes. The two BCs function as superradiant and subradiant resonators, respectively. Based on Mie-type destructive interferences between dielectric resonators, the EIT effect is induced at around 8.25 THz with the transmission peak close to 0.95. Moreover, the “two-particle” model is introduced to describe the EIT effect and the influence of couplings between the two BCs on the transmission spectra. Analytical results are in good agreement with numerical simulation results. Owing to the symmetry and uniformity of the metamaterial structure, polarization-independent and angle-insensitive properties can be achieved. In addition, the slow light characteristic of the metamaterial is also verified. Such an EIT scheme may have potential applications in low-loss slow light devices and bandpass filters.
机译:我们数值证明在太赫兹状态下可以实现具有极化独立性和入射角不敏感特性的电磁感应透明(EIT)全电介质。超材料单元由两个大小不同的双气孔立方体(BC)组成。两个BC分别用作超辐射和次辐射谐振器。基于介电谐振器之间的Mie型相消干扰,在约8.25 THz处产生EIT效应,且传输峰值接近0.95。此外,引入“两粒子”模型来描述EIT效应以及两个BC之间的耦合对透射光谱的影响。分析结果与数值模拟结果吻合良好。由于超材料结构的对称性和均匀性,可以实现偏振无关和角度不敏感的特性。另外,还验证了超材料的慢光特性。这种EIT方案可能在低损耗慢光设备和带通滤波器中具有潜在的应用。

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